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Takayoshi Matsumura

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Articles 49
Citations 906
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Recent Articles
11.
Matsumura T, Totani H, Gunji Y, Fukuda M, Yokomori R, Deng J, et al.
Nat Commun . 2022 Nov; 13(1):7064. PMID: 36400777
The transcription factor MYB is a crucial regulator of hematopoietic stem and progenitor cells. However, the nature of lineage-specific enhancer usage of the Myb gene is largely unknown. We identify...
12.
Baatarjav C, Komada T, Karasawa T, Yamada N, Sampilvanjil A, Matsumura T, et al.
Cell Death Differ . 2022 Jun; 29(12):2487-2502. PMID: 35739254
Rhabdomyolysis is a severe condition that commonly leads to acute kidney injury (AKI). While double-stranded DNA (dsDNA) released from injured muscle can be involved in its pathogenesis, the exact mechanism...
13.
Karasawa T, Komada T, Yamada N, Aizawa E, Mizushina Y, Watanabe S, et al.
Elife . 2022 May; 11. PMID: 35616535
Cryopyrin-associated periodic syndrome (CAPS) is an autoinflammatory syndrome caused by mutations of NLRP3 gene encoding cryopyrin. Familial cold autoinflammatory syndrome, the mildest form of CAPS, is characterized by cold-induced inflammation...
14.
Fukuda M, Matsumura T, Suda T, Hirase H
Neurophotonics . 2022 Mar; 9(2):021910. PMID: 35311215
Photothrombosis is a widely used model of ischemic stroke in rodent experiments. In the photothrombosis model, the photosensitizer rose bengal (RB) is systemically introduced into the blood stream and activated...
15.
Anzai F, Karasawa T, Komada T, Yamada N, Miura Y, Sampilvanjil A, et al.
Immunohorizons . 2021 Jul; 5(7):602-614. PMID: 34326201
Calciprotein particles (CPPs) are nanoparticles composed of calcium phosphate crystals and fetuin-A and have been implicated in diseases associated with inflammation. In the current study, we investigated the molecular mechanisms...
16.
Yang C, Endoh M, Tan D, Nakamura-Ishizu A, Takihara Y, Matsumura T, et al.
Br J Haematol . 2021 May; 193(6):1260-1274. PMID: 34036571
Adult erythropoiesis entails a series of well-coordinated events that produce mature red blood cells. One of such events is the mitochondria clearance that occurs cell-autonomously via autophagy-dependent mechanisms. Interestingly, recent...
17.
Hashimoto M, Umemoto T, Nakamura-Ishizu A, Matsumura T, Yokomizo T, Sezaki M, et al.
Blood Adv . 2021 Mar; 5(6):1594-1604. PMID: 33710340
Hematopoietic stem cells (HSCs) undergo self-renewal or differentiation to sustain lifelong hematopoiesis. HSCs are preserved in quiescence with low mitochondrial activity. Recent studies indicate that autophagy contributes to HSC quiescence...
18.
Nakamura-Ishizu A, Chin D, Matsumura T, Tan D, Mochizuki-Kashio M, Jianwen D, et al.
Blood . 2021 Mar; 137(19):2609-2620. PMID: 33657206
Hematopoietic stem cells (HSC) rarely divide, rest in quiescence, and proliferate only upon stress hematopoiesis. The cytokine thrombopoietin (Thpo) has been perplexingly described to induce quiescence and promote self-renewal divisions...
19.
Matsumura T, Nakamura-Ishizu A, Muddineni S, Tan D, Wang C, Tokunaga K, et al.
Blood . 2020 Jun; 136(17):1919-1932. PMID: 32573733
RUNX1 is among the most frequently mutated genes in human leukemia, and the loss or dominant-negative suppression of RUNX1 function is found in myelodysplastic syndrome and acute myeloid leukemia (AML)....
20.
Takihara Y, Nakamura-Ishizu A, Tan D, Fukuda M, Matsumura T, Endoh M, et al.
Blood Adv . 2019 Aug; 3(15):2323-2327. PMID: 31387881
No abstract available.